ASHRAE 4745-2005 Field Performance Assessment of VAV Control Systems to Determine the Longevity of Recommissioning《变风量控制系统场表现评核 以确定RP-1137再运行寿命》.pdf
《ASHRAE 4745-2005 Field Performance Assessment of VAV Control Systems to Determine the Longevity of Recommissioning《变风量控制系统场表现评核 以确定RP-1137再运行寿命》.pdf》由会员分享,可在线阅读,更多相关《ASHRAE 4745-2005 Field Performance Assessment of VAV Control Systems to Determine the Longevity of Recommissioning《变风量控制系统场表现评核 以确定RP-1137再运行寿命》.pdf(16页珍藏版)》请在麦多课文档分享上搜索。
1、4745 (RP-1137) Field Performance Assessment of VAV Control Systems to Determine the Longevity of Recommissioning Wayne Klaczek Pat Fleming, PE Member ASHRAE Mark Ackerman, PE Member ASHRAE Brian Fleck, PhD, PE Member ASHRAE ABSTRACT This paper summarizes key results of ASHRAE Research Project RP-113
2、7, which sought to quantzfi the benej2s and longevity of the recommissioning process on variable air volume (VAV) systems that incorporate direct digital control (DDC). Field testing was completed in three diverse facilities over aperiod of up to two years, generating three data trends. General perf
3、ormance indicators were compared using the data collected prior to commissioning, immediately after commissioning, and long after commissioning was completed (a minimum of six months later). Key performance indicators included: improved DDC system accuracy, indoor air quality (IAQ), and energy efici
4、encyhavings. It is important to note that RP-I 13 7 did not seek to determine allpossible recommis- sioning benejits, only to quantch some of the benejts using jeld testing and laboratovy experiments. This research indi- cates that commissioning is benejcial and that system recom- missioning is typi
5、cally justified within a time period similar to the capitalpaybackperiod. Conclusions are limited to the time period specified; thus, the longevity of recommissioning is at least equal to the payback period but cannot be predicted beyond this within RP-1137. INTRODUCTION Variable air volume (VAV) sy
6、stems with direct digital control (DDC) are generally implemented because of added economy, control, and operational efficiency when compared to conventional systems. Due to the variability with which these systems respond to operating conditions, system commissioning has evolved as an essential too
7、l to ensure HVAC systems operate as they were originally designed (Piette and Nordman 1996; Ellis 1996; Cappellin 1997; Elov- itz 1992). The general benefits of VAV systems with DDC have been documented in the last 30 (or so) years within ASHRAE Transactions. Therefore, for the purposes of this pape
8、r, VAV systems with DDC are generally treated as the best alternative for HVAC systems that are intended to minimize energy costs and maximize individual comfort. However, it is important to acknowledge that most sources that claim VAV systems are superior often refer to the importance of the commis
9、sioning process. Thus, the consensus seems to be that although VAV systems are an excellent option, these systems may behave quite poorly if commissioning is neglected or completed improperly. The problems associated with these systems often result in compromised comfort, lost energy e%- ciency, and
10、 indoor air quality (IAQ) concerns that must be addressed during the commissioning stages. Although the benefits of building commissioning and recommissioning have been recognized for some time, little formal work has been found dealing with the longevity of the recommissioning process. For instance
11、, if a system is re- commissioned such that the components are working perfectly to the original design intent, how long will the system operate in an acceptable manner? Six months? One year? Perhaps 10 years? These types of systems rely on DDC to adjust the system response to deal with varying envi
12、ron- mental conditions; therefore, the proper response of the system is highly influenced by the accuracy of the various control system sensors. If the sensors are not calibrated correctly, the control system will deviate from the design intent. Wayne Klaczek is a graduate student, Mark Ackerman is
13、the faculty service officer, and Brian Fleck is an associate professor in the Mechan- ical Engineering Department, University of Alberta, Edmonton, Alberta, Canada. Pat Fleming is a mechanical engineer at Hemisphere Engi- neering, Inc., Edmonton. 02005 ASHRAE. 37 ASHRAE Research Project 1137 at leas
14、t two years without any formal commissioning process. The objective of RP-1137 was to quantify the benefits, if any, of a recommissioning procedure on VAV systems with DDC at three different installations of varying design (although all of the systems were obviously VAV-based with DDC). The benefits
15、 of calibration were evaluated from a control performance perspective and were assessed before (BC) and after (AC) the recommissioning process with comparisons made to the original design intent. After a mini- mum of six months (AAC) an additional assessment was made to quantifi any deterioration in
16、 performance. Examples of specific performance indicators include energy efficiency, thermal comfort, and IAQ related to an adequate outdoor air flow rate into each zone. For the purposes of this research project, it is also impor- tant to note that the formal commissioning process, as outlined by A
17、SHRAE Guideline 1-1996, was not implemented. Rather a component of formal commissioning, the process of calibra- tions and operational checks, was performed on the systems considered in RP-1137. Formal commissioning is a detailed quality-control process that ensures a building system complies with a
18、 given design, operating within the accepted parameters of the design intent. This process is generally imbedded within the construction of a facility and forms part ofthe construction obligations of aproject. RP-1137 sought to isolate the quantifiable effects of system calibration and fault detecti
19、on without the involved process of forming a detailed design intent for a building system. Throughout RP-1137 the original design intent was assumed to be the current system setpoints; thus, a formal commissioning process was not completed, as it is beyond both the scope and the requirements of RP-1
20、137. The design intent was assumed to exercise the recommissioning procedure; thus, it was possible to evaluate the effects and the longevity of recommissioning VAV systems with DDC over time. METHODOLOGY AND DATA COLLECTION ASHRAE RP- 1 137 was extremely reliant on data collec- tion and the trendin
21、g capabilities of DDC systems. The choices of suitable test locations and the use of the control systems data trending functions and of external instrumenta- tion to make measurements were all vital considerations. The following section briefly describes the test locations consid- ered as well as th
22、e data trend techniques and the basic meth- odology for the project. Field Test Locations The test locations considered within RP-I 137 had to be within separate buildings and provide a suitable variation in system configuration, mechanical equipment, operations, maintenance practices, and control m
23、ethodology. Facilities were selected that had a minimum flow of 20,000 CFM (9439 L/s), approximately 20 or more VAV terminals, and varying brands of DDC systems. Finally, it was specified that each facility considered in the study must have been operating for Three suitable facilities were located i
24、n the city of Edmonton and surrounding area. The facilities included a clinical wing at a large medical facility (5 1 supply VAV terminals), an institu- tional building located at the University of Alberta (51 supply VAV terminals), and a municipal library (17 supply VAV terminals). Data Trends and
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